IP Library › Granted Patent US 10,510,948
Granted Patent B2
US 10,510,948 · App. 15/777,894 · Granted Dec 17, 2019

Magnetoresistive effect element, magnetic memory, magnetization rotation method, and spin current magnetization rotational element

Inventor: Tomoyuki Sasaki (Tokyo, JP)
Assignee: TDK CORPORATION
H01L43/06G01R33/098G11B5/39G11C11/161G11C11/1675G11C11/18H01F10/329H01F10/3254H01L27/105H01L27/222H01L29/82H01L43/02H01L43/08H01L43/10H01L43/14H03B15/00H03B15/006
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Quick Facts
Patent No.
US 10,510,948
App. No.
15/777,894
Granted
Dec 17, 2019
Kind
B2
Abstract

This spin current magnetization rotational type magnetoresistive element includes a magnetoresistive effect element having a first ferromagnetic metal layer having a fixed magnetization orientation, a second ferromagnetic metal layer having a variable magnetization orientation, and a non-magnetic layer sandwiched between the first ferromagnetic metal layer and the second ferromagnetic metal layer, and spin-orbit torque wiring which extends in a direction that intersects the stacking direction of the magnetoresistive effect element, and is connected to the second ferromagnetic metal layer, wherein the electric current that flows through the magnetoresistive effect element and the electric current that flows through the spin-orbit torque wiring merge or are distributed in the portion where the magnetoresistive effect element and the spin-orbit torque wiring are connected.

Claims (28)

1. A spin current magnetization rotational type magnetoresistive element comprising:

a magnetoresistive effect element having a first ferromagnetic metal layer having a fixed magnetization orientation, a second ferromagnetic metal layer having a variable magnetization orientation, and a non-magnetic layer sandwiched between the first ferromagnetic metal layer and the second ferromagnetic metal layer; and

spin-orbit torque wiring which extends in a direction that intersects a stacking direction of the magnetoresistive effect element, and is connected to the second ferromagnetic metal layer,

wherein an electric current that flows through the magnetoresistive effect element and an electric current that flows through the spin-orbit torque wiring merge or are distributed in a portion where the magnetoresistive effect element and the spin-orbit torque wiring are connected, and

the spin-orbit torque wiring is composed of a pure spin current generation portion formed from a material that generates a pure spin current, and a low-resistance portion formed from a material having a smaller electrical resistance than the pure spin current generation portion, and at least a portion of the pure spin current generation portion contacts the second ferromagnetic metal layer.

2. The spin current magnetization rotational type magnetoresistive element according to claim 1 , wherein the spin-orbit torque wiring comprises a non-magnetic metal with an atomic number of 39 or greater having d-electrons or f-electrons in an outermost shell.

3. The spin current magnetization rotational type magnetoresistive element according to claim 1 , wherein the spin-orbit torque wiring comprises a magnetic metal.

4. The spin current magnetization rotational type magnetoresistive element according to claim 1 , further comprising:

a cap layer between the spin-orbit torque wiring and the second ferromagnetic metal layer,

wherein the spin-orbit torque wiring and the second ferromagnetic metal layer are connected via the cap layer.

5. The spin current magnetization rotational type magnetoresistive element according to claim 1 , wherein the spin-orbit torque wiring has a side wall connection portion that connects to a side wall of the second ferromagnetic metal layer.

6. Magnetic memory comprising a plurality of the spin current magnetization rotational type magnetoresistive elements according to claim 1 .

7. A magnetization rotation method for use in the spin current magnetization rotational type magnetoresistive element according to claim 1 , the method comprising applying an electric current to a power supply of the spin-orbit torque wiring, and subsequently applying an electric current to a power supply of the magnetoresistive effect element.

8. A spin current magnetization rotational element comprising:

a ferromagnetic metal layer having a variable magnetization orientation; and

spin-orbit torque wiring which extends in a direction that intersects a direction perpendicular to a surface of the ferromagnetic metal layer, and is connected to the ferromagnetic metal layer,

wherein the spin-orbit torque wiring is composed of a pure spin current generation portion formed from a material that generates a pure spin current, and a low-resistance portion formed from a material having a smaller electrical resistance than the pure spin current generation portion, and at least a portion of the pure spin current generation portion contacts the ferromagnetic metal layer.

9. The spin current magnetization rotational type magnetoresistive element according to claim 2 , wherein the spin-orbit torque wiring comprises a magnetic metal.

10. The spin current magnetization rotational type magnetoresistive element according to claim 2 , further comprising:

a cap layer between the spin-orbit torque wiring and the second ferromagnetic metal layer,

wherein the spin-orbit torque wiring and the second ferromagnetic metal layer are connected via the cap layer.

11. The spin current magnetization rotational type magnetoresistive element according to claim 3 , further comprising:

a cap layer between the spin-orbit torque wiring and the second ferromagnetic metal layer,

wherein the spin-orbit torque wiring and the second ferromagnetic metal layer are connected via the cap layer.

12. The spin current magnetization rotational type magnetoresistive element according to claim 2 , wherein the spin-orbit torque wiring has a side wall connection portion that connects to a side wall of the second ferromagnetic metal layer.

13. The spin current magnetization rotational type magnetoresistive element according to claim 3 , wherein the spin-orbit torque wiring has a side wall connection portion that connects to a side wall of the second ferromagnetic metal layer.

14. The spin current magnetization rotational type magnetoresistive element according to claim 4 , wherein the spin-orbit torque wiring has a side wall connection portion that connects to a side wall of the second ferromagnetic metal layer.

15. The magnetization rotation method according to claim 7 , wherein an electric current density flowing through the spin-orbit torque wiring is less than 1×10 7 A/cm 2 .

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 21, 2018
From: SASAKI, TOMOYUKI
To: TDK CORPORATION
Reel/Frame 045865/0607 →
Priority Claims (5)
JP 2015-232334 · Nov 27, 2015 · national
JP 2016-053072 · Mar 16, 2016 · national
JP 2016-056058 · Mar 18, 2016 · national
JP 2016-210531 · Oct 27, 2016 · national
JP 2016-210533 · Oct 27, 2016 · national
Continuity (1)
Related Publication 20180337326A1 · Nov 22, 2018